Title :
Robust and Efficient Intercarrier Interference Mitigation for OFDM Systems in Time-Varying Fading Channels
Author :
Huang, Xiaozhou ; Wu, Hsiao-Chun
Author_Institution :
Texas Instrum., Germantown
Abstract :
Due to its spectral efficiency and robustness over multipath channels, orthogonal frequency-division multiplexing (OFDM) has served as one of the major modulation schemes for high-speed communication systems. In the future, wireless OFDM systems are expected to operate at high carrier frequencies, high speed, and high throughput for mobile reception, where fast time-varying fading channels are encountered. Channel variation destroys the orthogonality among the subcarriers and leads to intercarrier interference (ICI). ICI poses a significant limitation on wireless OFDM systems. The aim of this paper is to find an efficient method of providing reliable communications using OFDM in fast time-varying fading channels. It is observed that ICI power arises from a few adjacent subcarriers. This observation motivates us to design low-complexity -tap ICI equalizers. To employ these equalizers, channel state information is also required. In this paper, we also design a pilot-aided minimum mean square error (MMSE) channel estimation scheme for a time-varying wide-sense stationary uncorrelated scatters channel model. The MMSE channel estimator utilizes the statistical channel properties to achieve computational efficiency. Simulation results show that our proposed low-complexity ICI suppression scheme, which incorporates the -tap equalizer with the MMSE channel estimator, can significantly improve the performance of OFDM systems in fast time-varying fading channels.
Keywords :
OFDM modulation; channel estimation; equalisers; fading channels; intercarrier interference; interference suppression; least mean squares methods; mobile radio; statistical analysis; telecommunication network reliability; time-varying channels; channel estimation scheme; channel state information; channel variation; efficient intercarrier interference mitigation; high-speed communication systems; low-complexity Q-tap ICI equalizers; mobile reception; orthogonal frequency-division multiplexing; pilot-aided minimum mean square error; reliable communications; spectral efficiency; statistical channel properties; time-varying fading channels; wide-sense stationary uncorrelated scatters channel model; wireless OFDM systems; Equalizers; Fading; Frequency division multiplexing; Interference; Multipath channels; OFDM modulation; Power system reliability; Robustness; Throughput; Time varying systems; $Q$-tap equalizer; Fading channels; intercarrier interference (ICI); minimum mean square error (MMSE); orthogonal frequency-division multiplexing (OFDM); wide-sense stationary uncorrelated scatters (WSSUS);
Journal_Title :
Vehicular Technology, IEEE Transactions on
DOI :
10.1109/TVT.2007.899974